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QSAR and Molecular Docking Studies of the Inhibitory Activity of Novel Heterocyclic GABA Analogues over GABA-AT

We have previously reported the synthesis, in vitro and in silico activities of new GABA analogues as inhibitors of the GABA-AT enzyme from Pseudomonas fluorescens, where the nitrogen atom at the γ-position is embedded in heterocyclic scaffolds. With the goal of finding more potent inhibitors, we no...

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Autores principales: Rodríguez-Lozada, Josué, Tovar-Gudiño, Erika, Guevara-Salazar, Juan Alberto, Razo-Hernández, Rodrigo Said, Santiago, Ángel, Pastor, Nina, Fernández-Zertuche, Mario
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6278377/
https://www.ncbi.nlm.nih.gov/pubmed/30445747
http://dx.doi.org/10.3390/molecules23112984
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author Rodríguez-Lozada, Josué
Tovar-Gudiño, Erika
Guevara-Salazar, Juan Alberto
Razo-Hernández, Rodrigo Said
Santiago, Ángel
Pastor, Nina
Fernández-Zertuche, Mario
author_facet Rodríguez-Lozada, Josué
Tovar-Gudiño, Erika
Guevara-Salazar, Juan Alberto
Razo-Hernández, Rodrigo Said
Santiago, Ángel
Pastor, Nina
Fernández-Zertuche, Mario
author_sort Rodríguez-Lozada, Josué
collection PubMed
description We have previously reported the synthesis, in vitro and in silico activities of new GABA analogues as inhibitors of the GABA-AT enzyme from Pseudomonas fluorescens, where the nitrogen atom at the γ-position is embedded in heterocyclic scaffolds. With the goal of finding more potent inhibitors, we now report the synthesis of a new set of GABA analogues with a broader variation of heterocyclic scaffolds at the γ-position such as thiazolidines, methyl-substituted piperidines, morpholine and thiomorpholine and determined their inhibitory potential over the GABA-AT enzyme from Pseudomonas fluorescens. These structural modifications led to compound 9b which showed a 73% inhibition against this enzyme. In vivo studies with PTZ-induced seizures on male CD1 mice show that compound 9b has a neuroprotective effect at a 0.50 mmole/kg dose. A QSAR study was carried out to find the molecular descriptors associated with the structural changes in the GABA scaffold to explain their inhibitory activity against GABA-AT. Employing 3D molecular descriptors allowed us to propose the GABA analogues enantiomeric active form. To evaluate the interaction with Pseudomonas fluorescens and human GABA-AT by molecular docking, the constructions of homology models was carried out. From these calculations, 9b showed a strong interaction with both GABA-AT enzymes in agreement with experimental results and the QSAR model, which indicates that bulky ligands tend to be the better inhibitors especially those with a sulfur atom on their structure.
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spelling pubmed-62783772018-12-13 QSAR and Molecular Docking Studies of the Inhibitory Activity of Novel Heterocyclic GABA Analogues over GABA-AT Rodríguez-Lozada, Josué Tovar-Gudiño, Erika Guevara-Salazar, Juan Alberto Razo-Hernández, Rodrigo Said Santiago, Ángel Pastor, Nina Fernández-Zertuche, Mario Molecules Article We have previously reported the synthesis, in vitro and in silico activities of new GABA analogues as inhibitors of the GABA-AT enzyme from Pseudomonas fluorescens, where the nitrogen atom at the γ-position is embedded in heterocyclic scaffolds. With the goal of finding more potent inhibitors, we now report the synthesis of a new set of GABA analogues with a broader variation of heterocyclic scaffolds at the γ-position such as thiazolidines, methyl-substituted piperidines, morpholine and thiomorpholine and determined their inhibitory potential over the GABA-AT enzyme from Pseudomonas fluorescens. These structural modifications led to compound 9b which showed a 73% inhibition against this enzyme. In vivo studies with PTZ-induced seizures on male CD1 mice show that compound 9b has a neuroprotective effect at a 0.50 mmole/kg dose. A QSAR study was carried out to find the molecular descriptors associated with the structural changes in the GABA scaffold to explain their inhibitory activity against GABA-AT. Employing 3D molecular descriptors allowed us to propose the GABA analogues enantiomeric active form. To evaluate the interaction with Pseudomonas fluorescens and human GABA-AT by molecular docking, the constructions of homology models was carried out. From these calculations, 9b showed a strong interaction with both GABA-AT enzymes in agreement with experimental results and the QSAR model, which indicates that bulky ligands tend to be the better inhibitors especially those with a sulfur atom on their structure. MDPI 2018-11-15 /pmc/articles/PMC6278377/ /pubmed/30445747 http://dx.doi.org/10.3390/molecules23112984 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rodríguez-Lozada, Josué
Tovar-Gudiño, Erika
Guevara-Salazar, Juan Alberto
Razo-Hernández, Rodrigo Said
Santiago, Ángel
Pastor, Nina
Fernández-Zertuche, Mario
QSAR and Molecular Docking Studies of the Inhibitory Activity of Novel Heterocyclic GABA Analogues over GABA-AT
title QSAR and Molecular Docking Studies of the Inhibitory Activity of Novel Heterocyclic GABA Analogues over GABA-AT
title_full QSAR and Molecular Docking Studies of the Inhibitory Activity of Novel Heterocyclic GABA Analogues over GABA-AT
title_fullStr QSAR and Molecular Docking Studies of the Inhibitory Activity of Novel Heterocyclic GABA Analogues over GABA-AT
title_full_unstemmed QSAR and Molecular Docking Studies of the Inhibitory Activity of Novel Heterocyclic GABA Analogues over GABA-AT
title_short QSAR and Molecular Docking Studies of the Inhibitory Activity of Novel Heterocyclic GABA Analogues over GABA-AT
title_sort qsar and molecular docking studies of the inhibitory activity of novel heterocyclic gaba analogues over gaba-at
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6278377/
https://www.ncbi.nlm.nih.gov/pubmed/30445747
http://dx.doi.org/10.3390/molecules23112984
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